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Design of a microfluidic based lab-on-a-chip for integrated sample manipulation and dispensing.

机译:基于微流体的芯片实验室的设计,用于集成的样品处理和分配。

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摘要

Microfluidic based miniature lab-on-a-chip devices integrate different laboratory functionality in microscale. Microarray technology is evolving as a powerful tool for biomedical and pharmaceutical applications to identify gene sequences or to determine gene expression levels. Preparation of samples and spotting the arrays are the two major steps required for making microarrays. The microfluidic components developed in this research would facilitate performing the above-mentioned steps by a single lab-on-a-chip. Three microfluidic modules were developed: a non-contact microdispenser, an interface connecting the microdispenser with planar Electrowetting on Dielectric (EWOD) sample manipulator and a microvalve that controls the flow at the interface.;An electrostatically actuated non-contact type drop-on-demand based microdispenser was developed. The dispenser was designed using finite element modeling technique that solved electrostatically actuated dispensing process. Prototypes were fabricated and tested verifying stable droplet dispensing with error in subsequent droplet generation was less than 15% between each droplet. The frequency of stable generation was 20 Hz and the average volume of dispensed droplet was 1 nL.;A closed-channel EWOD actuated interface was developed that allowed a series of droplets to merge inside at the interface converting droplet flow to a continuous flow. An innovative design modification allowed series of droplet merging inside closed-channel. The interface allows integration of pressure driven devices such as: pumps, dispensers, and valves with droplet based planar EWOD devices.;A novel EWOD based microvalve was developed that utilizes a thermo-responsive polymer to block and unblock a pressurized continuous flow. EWOD actuation was used to control the positioning of the valving polymer at location of interest. The valve also isolated a pressurized flow from an integrated planar EWOD device. Valves with zero leak rates were demonstrated. Such a valve will be useful in controlling microflows in EWOD to pressure driven flows such as dispensers.
机译:基于微流体的微型芯片实验室设备在微尺度上集成了不同的实验室功能。微阵列技术正在发展成为一种强大的工具,可用于生物医学和制药应用,以鉴定基因序列或确定基因表达水平。制备样品和点样阵列是制造微阵列所需的两个主要步骤。在这项研究中开发的微流体组件将有助于通过单个芯片实验室来执行上述步骤。开发了三个微流体模块:非接触式微分配器,将微分配器与平面电介质上电润湿(EWOD)样品操纵器连接的接口以及控制该接口处流量的微阀;静电驱动非接触式滴液器开发了基于需求的微型分配器。使用有限元建模技术设计了点胶机,该技术解决了静电驱动的点胶过程。制作原型并进行测试,以验证稳定的液滴分配并在随后的液滴生成中产生误差,每个液滴之间的误差小于15%。稳定产生的频率为20 Hz,分配的液滴的平均体积为1 nL。开发了一种闭路EWOD致动界面,该界面允许一系列液滴在界面处合并,从而将液滴流转换为连续流。创新的设计修改允许一系列液滴在封闭通道内合并。该界面允许将压力驱动设备(例如:泵,分配器和阀门)与基于液滴的平面EWOD设备集成在一起;开发了一种新型的基于EWOD的微型阀,该阀利用热响应聚合物来阻止和解除加压的连续流。 EWOD致动用于控制阀门聚合物在目标位置的定位。该阀还从集成的平面EWOD设备中隔离了压力流。阀门泄漏率为零。这种阀在控制EWOD中的微流到压力驱动流(如分配器)方面将很有用。

著录项

  • 作者

    Ahamed, Mohammed Jalal.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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